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MRI-Based Multiscale Model for Electromagnetic Analysis in the Human Head with Implanted DBS

机译:基于MRI的多尺度模型,用于植入DBS的人体电磁分析

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Deep brain stimulation (DBS) is an established procedure for the treatment of movement and affective disorders. Patients with DBS may benefit from magnetic resonance imaging (MRI) to evaluate injuries or comorbidities. However, the MRI radio-frequency (RF) energy may cause excessive tissue heating particularly near the electrode. This paper studies how the accuracy of numerical modeling of the RF field inside a DBS patient varies with spatial resolution and corresponding anatomical detail of the volume surrounding the electrodes. A multiscale model (MS) was created by an atlas-based segmentation using a 1 mm3head model (mRes) refined in the basal ganglia by a 200 μm2ex-vivo dataset. Four DBS electrodes targeting the left globus pallidus internus were modeled. Electromagnetic simulations at 128 MHz showed that the peak of the electric field of the MS doubled (18.7 kV/m versus 9.33 kV/m) and shifted 6.4 mm compared to the mRes model. Additionally, the MS had a sixfold increase over the mRes model in peak-specific absorption rate (SAR of 43.9 kW/kg versus 7 kW/kg). The results suggest that submillimetric resolution and improved anatomical detail in the model may increase the accuracy of computed electric field and local SAR around the tip of the implant.
机译:深脑刺激(DBS)是治疗运动和情感障碍的既定程序。患有DBS的患者可能受益于磁共振成像(MRI)来评估伤害或合并症。然而,MRI射频(RF)能量可能导致过多的组织加热特别靠近电极。本文研究了DBS患者内部RF场的数值建模的准确性如何随空间分辨率和电极围绕电极的体积的相应解剖细节而变化。多尺度模型(MS)由基于ATLAS的分段使用200μm2Ex-Vivo数据集中由基底神经节中精致的1 mm3head模型(MRE)创建。建模靶向左侧Globus的四种DBS电极。 128 MHz的电磁模拟表明,与MRE模型相比,MS的电场的峰值加倍(18.7kV / m,与9.33kV / m,相比移动6.4mm。另外,MS在峰特异性吸收率(SAR为43.9 kW / kg与7 kW / kg)上的MRES模型上增加了六倍。结果表明,模型中的淹没分辨率和改进的解剖细节可以增加计算的电场和局部SAR周围植入尖端的精度。

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